We present the results of the automated post-processing of Mueller
microscopy images of skin tissue models with a new fast version of the
algorithm of density-based spatial clustering of applications with
noise (FastDBSCAN) and discuss the advantages of its implementation
for digital histology of tissue. We demonstrate that using the
FastDBSCAN algorithm, one can produce the diagnostic segmentation of
high resolution images of tissue by several orders of magnitude faster
and with high accuracy (
>
97
%
) compared to the original version of
the algorithm.
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